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Evaluation of Speech-Based Protocol for Detection of Early-Stage Dementia

机译:评估语音的检测早期性痴呆的协议

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This paper describes a study of a protocol and a system for automatic detection and status tracking of early-stage dementia and Mild Cognitive Impairment (MCI), from speech and voice recordings. The research has been performed in the scope of the EU FP7 Dem@Care project. We describe the speech and voice recording protocol, different families of vocal features as derived from the recorded data, the statistical properties of the vocal features, a classifier based on support vector machine, and the classification results. The vocal features we used detect the manifestation of dementia in the human voice and speech, in three axes: the impact of cognitive deficit and slower brain processing, the impact of certain mood states often observed in dementia, and the impact of impairments of the neuromuscular mechanism of the speech production. Our analysis is based on recordings of over 80 diagnosed subjects; it yields dementia and MCI detection equal-error-rate below 20%, and demonstrates the high value of using speech and voice analysis for automatic screening and status tracking of dementia from the very early stage of MCI.
机译:本文介绍了一种协议和系统的研究,用于自动检测和状态跟踪早期痴呆和轻度认知障碍(MCI),来自语音和语音录制。该研究已经在欧盟FP7 DEM @ CARE项目的范围内进行。我们描述了语音和语音录制协议,不同家庭的声乐特征,从记录的数据中导出,声带的统计特性,基于支持向量机的分类器,以及分类结果。我们使用的声音特征检测人类语音和言语中痴​​呆症的表现,三轴:认知赤字和脑加工较慢的影响,某些情绪状态的影响常见于痴呆症,以及神经血清损伤的影响语音生产的机制。我们的分析基于80多种诊断科目的录音;它产生痴呆和MCI检测等误差率低于20%,并展示了使用MCI的早期阶段的自动筛选和状态跟踪的语音和语音分析的高价值。

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